96
Beiyuan J, Awad YM, Beckers F, Tsang DC, Ok YS, Rinklebe J (2017) Mobility and phytoavailability of As and Pb in a contaminated soil using pine sawdust biochar under systematic change
of redox conditions. Chemosphere 178:110–118
Bernard EI, Okoduwa SIR, Idoko GO, Akabuogu EP, Adeyi AO, Ejiogu IK (2018) Toxicity and
bioremediation of heavy metals contaminated ecosystem from tannery wastewater: a review. J
Toxicol 2018:2568038
Blaylock MJ, Mark PE, Huang JW, Dushenkuv V (1999) Phytoremediation of lead-contaminated
soil at a New Jersey Brownfield site. Remediation 9(3):93–101
Bolan NS, Kunhikrishnan A, Naidu R (2013) Carbon storage in a heavy clay soil landfill site after
biosolid application. Sci Total Environ 465:216–225
Brown MT, Hall IR (1990) Metal tolerance in fungi. In: Shaw J (ed) Heavy metal tolerance in
plants: evolutionary aspects. CRC Press, Boca Raton, pp 95–104
Caravaca F, Alguacil MM, Barea JM, Roldán A (2005) Survival of inocula and native AM fungi
species associated with shrubs in a degraded Mediterranean ecosystem. Soil Biol Biochem
37:227–233
Caravaca F, Alguacil MM, Díaz G, Marin P, Roldán A (2006) Growth and nitrate reductase activity in Juniperus oxycedrus subjected to organic amendments and inoculation with arbuscular
mycorrhizae. J Plant Nutr Soil Sci 169:501–505
Cenkci S, Ildiz MY, Cigerci IHI, Konuk M, Bozdag A (2009) Toxic chemicals induced genotoxicity detected by random amplified polymorphic DNA (RAPD) in bean (Phaseolus vulgaris L.)
seedlings. Chemosphere 76:900–906
Chen M, Xu P, Zeng G, Yang C, Huang D, Zhang J (2015) Bioremediation of soils contaminated
with polycyclic aromatic hydrocarbons, petroleum, pesticides, chlorophenols and heavy metals
by composting: applications, microbes and future research needs. Biotechnol Adv 33:745–755
Cobbina SJ, Chen Y, Zhou Z, Wu X, Zhao T, Zhang Z et al (2015) Toxicity assessment due to
sub-chronic exposure to individual and mixtures of four toxic heavy metals. J Hazard Mater
294:109–120
Daniel R, Madeleine S, Gunthardt-Georg HB, Beat F (2006) Accumulation of heavy metals into
Armillaria rhizomorphs from contaminated soils. For Snow Landsc Res 80(2):213–220
Ecker DJ, Emery T (1983) Iron uptake from ferrichrome A and iron citrate in Ustilago sphaerogena. J Bacteriol 155(2):616–622
Ekperusi O, Aigbodion F (2015) Bioremediation of petroleum hydrocarbons from crude oilcontaminated soil with the earthworm Hyperiodrilus africanus. 3 Biotech 5:957–965
Gadd GM (1986) The response of fungi toward heavy metals. In: Herbert RA, Codd GA (eds)
Microbes in extreme environments. Academic, London, pp 83–110
Gadd GM (1993) Interaction of fungi with toxic metals. New Phytol 124:25–60
Gadd GM, Bahri-Esfahani J, Li Q, Rhee YJ, Wei Z, Fomina M, Liang X (2014) Oxalate production by fungi: significance in geomycology, biodeterioration and bioremediation. Fungal Biol
Rev 28:36–55
Gildon A, Tinker PB (1983) Interactions of vesicular–arbuscular mycorrhizal infections and heavy
metals in plants. II. The effects of infection of uptake of copper. New Phytol 95:263–268
Graber E, Tsechansky L, Lew B, Cohen E (2014) Reducing capacity of water extracts of biochars
and their solubilization of soil Mn and Fe. Eur J Soil Sci 65:162–172
Hansen CL, Stevens DK (1992) Biological and physicochemical remediation of mercurycontaminated hazardous waste, pp 121–125. EPA/600/R-92/105
Hedayati MT, Mayahi S, Aghil R, Goharimoghadam K (2005) Airborne fungi in indoor and outdoor of asthmatic patients’ home, living in the city of Sari. Iran J Allergy Asthma Immunol
4:189–191
Hidebrandt U, Regvar M, Bothe H (2007) Arbuscular mycorrhiza and heavy metal tolerance.
Phytochemistry 68(1):139–146
Horn JM, Brunke WDD, Timmis KN (1992) Development of bacterial strains for the remediation
of mercurial wastes, aresenic and mercury. Workshop on removal, recovery, treatment and
disposal, pp 106–109. EPA/600/R-92/105
R. Govindan et al.
Beiyuan J, Awad YM, Beckers F, Tsang DC, Ok YS, Rinklebe J (2017) Mobility and phytoavailability of As and Pb in a contaminated soil using pine sawdust biochar under systematic change
of redox conditions. Chemosphere 178:110–118
Bernard EI, Okoduwa SIR, Idoko GO, Akabuogu EP, Adeyi AO, Ejiogu IK (2018) Toxicity and
bioremediation of heavy metals contaminated ecosystem from tannery wastewater: a review. J
Toxicol 2018:2568038
Blaylock MJ, Mark PE, Huang JW, Dushenkuv V (1999) Phytoremediation of lead-contaminated
soil at a New Jersey Brownfield site. Remediation 9(3):93–101
Bolan NS, Kunhikrishnan A, Naidu R (2013) Carbon storage in a heavy clay soil landfill site after
biosolid application. Sci Total Environ 465:216–225
Brown MT, Hall IR (1990) Metal tolerance in fungi. In: Shaw J (ed) Heavy metal tolerance in
plants: evolutionary aspects. CRC Press, Boca Raton, pp 95–104
Caravaca F, Alguacil MM, Barea JM, Roldán A (2005) Survival of inocula and native AM fungi
species associated with shrubs in a degraded Mediterranean ecosystem. Soil Biol Biochem
37:227–233
Caravaca F, Alguacil MM, Díaz G, Marin P, Roldán A (2006) Growth and nitrate reductase activity in Juniperus oxycedrus subjected to organic amendments and inoculation with arbuscular
mycorrhizae. J Plant Nutr Soil Sci 169:501–505
Cenkci S, Ildiz MY, Cigerci IHI, Konuk M, Bozdag A (2009) Toxic chemicals induced genotoxicity detected by random amplified polymorphic DNA (RAPD) in bean (Phaseolus vulgaris L.)
seedlings. Chemosphere 76:900–906
Chen M, Xu P, Zeng G, Yang C, Huang D, Zhang J (2015) Bioremediation of soils contaminated
with polycyclic aromatic hydrocarbons, petroleum, pesticides, chlorophenols and heavy metals
by composting: applications, microbes and future research needs. Biotechnol Adv 33:745–755
Cobbina SJ, Chen Y, Zhou Z, Wu X, Zhao T, Zhang Z et al (2015) Toxicity assessment due to
sub-chronic exposure to individual and mixtures of four toxic heavy metals. J Hazard Mater
294:109–120
Daniel R, Madeleine S, Gunthardt-Georg HB, Beat F (2006) Accumulation of heavy metals into
Armillaria rhizomorphs from contaminated soils. For Snow Landsc Res 80(2):213–220
Ecker DJ, Emery T (1983) Iron uptake from ferrichrome A and iron citrate in Ustilago sphaerogena. J Bacteriol 155(2):616–622
Ekperusi O, Aigbodion F (2015) Bioremediation of petroleum hydrocarbons from crude oilcontaminated soil with the earthworm Hyperiodrilus africanus. 3 Biotech 5:957–965
Gadd GM (1986) The response of fungi toward heavy metals. In: Herbert RA, Codd GA (eds)
Microbes in extreme environments. Academic, London, pp 83–110
Gadd GM (1993) Interaction of fungi with toxic metals. New Phytol 124:25–60
Gadd GM, Bahri-Esfahani J, Li Q, Rhee YJ, Wei Z, Fomina M, Liang X (2014) Oxalate production by fungi: significance in geomycology, biodeterioration and bioremediation. Fungal Biol
Rev 28:36–55
Gildon A, Tinker PB (1983) Interactions of vesicular–arbuscular mycorrhizal infections and heavy
metals in plants. II. The effects of infection of uptake of copper. New Phytol 95:263–268
Graber E, Tsechansky L, Lew B, Cohen E (2014) Reducing capacity of water extracts of biochars
and their solubilization of soil Mn and Fe. Eur J Soil Sci 65:162–172
Hansen CL, Stevens DK (1992) Biological and physicochemical remediation of mercurycontaminated hazardous waste, pp 121–125. EPA/600/R-92/105
Hedayati MT, Mayahi S, Aghil R, Goharimoghadam K (2005) Airborne fungi in indoor and outdoor of asthmatic patients’ home, living in the city of Sari. Iran J Allergy Asthma Immunol
4:189–191
Hidebrandt U, Regvar M, Bothe H (2007) Arbuscular mycorrhiza and heavy metal tolerance.
Phytochemistry 68(1):139–146
Horn JM, Brunke WDD, Timmis KN (1992) Development of bacterial strains for the remediation
of mercurial wastes, aresenic and mercury. Workshop on removal, recovery, treatment and
disposal, pp 106–109. EPA/600/R-92/105
R. Govindan et al.
